纳米技术
纳米孔
催化作用
合理设计
共价键
基质(水族馆)
材料科学
对映选择合成
化学
不对称氢化
纳米颗粒
转化式学习
纳米尺度
可扩展性
双功能
金属有机骨架
手性(物理)
组合化学
多相催化
计算机科学
有机催化
生化工程
领域(数学)
比例(比率)
设计要素和原则
表征(材料科学)
作者
Li‐Ke Wang,Tong-Yu Lin,Xin-Ru Chen,Xiaotong Wang,Yong‐Liang Ban,Zengchen Liu,Yu‐Bao Lan
标识
DOI:10.1021/acsanm.6c02367
摘要
Abstract Chiral covalent organic frameworks (CCOFs) have emerged as a transformative platform for asymmetric catalysis, uniquely combining molecular-level stereocontrol with the practical advantages of heterogeneous materials. This review systematically examines the strategic design and synthesis of CCOFs through three primary approaches─direct synthesis, postsynthetic modification, and chiral induction─each with distinct advantages and limitations. We highlight their groundbreaking catalytic applications across thermal catalysis, photocatalysis, and the emerging field of electrocatalysis. The central focus is the nanoscale confinement effect, wherein pore size, shape, and chemical microenvironment collectively govern substrate enrichment, transition-state stabilization, and enantioselectivity. However, achieving precise structural control at the atomic level, elucidating catalytic mechanisms within confined nanospaces, and developing scalable synthesis remain formidable challenges. By integrating recent achievements with critical insights into these challenges, this review provides a rational framework for designing next-generation CCOF catalysts, paving the way toward more sustainable and efficient asymmetric synthesis.
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